IP Library Granted Patent US 6,909,098
Granted Patent B2
US 6,909,098 · App. 10/308,950 · Granted Jun 21, 2005

Systems and methods for detecting nuclear radiation in the presence of backgrounds

Assignee: Universities Research Association Inc.
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Quick Facts
Patent No.
US 6,909,098
App. No.
10/308,950
Granted
Jun 21, 2005
Kind
B2
Abstract

Systems and methods for the simultaneous detection and identification of radiation species, including neutrons, gammas/x-rays and minimum ionizing particles (MIPs). A plurality of rectangular and/or triangularly shaped radiation sensitive scintillators can be configured from a plurality of nano-sized particles, dopants and an extruded plastic material. A wavelength-shifting fiber can then be located within a central hole of each extruded scintillator, wherein the wavelength-shifting fiber absorbs scintillation light and re-emits the light at a longer wavelength, thereby piping the light to a photodetector whose response to the light indicates the presence of radiation The resulting method and system can simultaneously detect neutrons, gamma rays, x-rays and cosmic rays (MIPs) and identify each.

Claims (36)

1. A system for the detection of nuclear radiation in the presence of backgrounds, said system comprising:

a plurality of radiation sensitive scintillators configured from a plurality of nano-sized particles, dopants and an extruded a plastic material, wherein each of said radiation sensitive scintillators includes a central hole thereof;

a wavelength-shifting fiber located within said hole, wherein said wavelength-shifting fiber absorbs scintillation light having a wavelength thereof and re-emits said light at a longer wavelength to simultaneously indicate and identify the presence of at least one particular type of nuclear radiation from among a plurality of nuclear radiation types.

2. The system of claim 1 wherein said plurality of radiation sensitive scintillators comprises a pair of MIP sensitive scintillators.

3. The system of claim 1 wherein said plurality of radiation sensitive scintillators further comprises:

a first scintillator layer comprising a plurality of pairs of MIP sensitive scintillators, wherein a MIP deposits energy with a triangular pair thereof;

a second scintillator layer comprising a plurality of neutron-sensitive scintillators, wherein said second scintillator layer is sensitive to neutron interactions such that any event within said second scintillator signals the detection of at least on neutron; and

a third scintillator layer comprising a plurality of x-ray sensitive scintillators, wherein said third scintillator layer is sensitive to x-ray interactions such that any event within said third scintillator signals the detection of at least one x-ray.

4. The system of claim 1 further comprising

compounding means for compounding said plurality of heavy element nano-sized particle into said plastic material in association with at least one dopant that permits said plastic material to scintillate in response to x-ray interactions thereof.

5. A system for the detection of nuclear radiation in the presence of backgrounds said system comprising:

a plurality of minimum ionizing particle (MIP) sensitive scintillators configured from a plurality of scintillator dopants and a plastic material, wherein said plurality of MIP sensitive scintillators comprises a pair of MIP sensitive scintillators, herein each of said MIP sensitive scintillators includes a central hole thereof;

a wavelength-shifting fiber located within said hole, wherein said wavelength-shifting fiber absorbs scintillation light having a wavelength thereof and re-emits said light at a longer wavelength to indicate the presence of at least one minimum ionizing particle;

a first scintillator layer comprising a plurality of pairs of said MIP sensitive scintillators, wherein an MIP deposits energy within a pair thereof;

a second scintillator layer comprising a plurality of neutron-sensitive scintillators, wherein said second scintillator layer is sensitive to neutron interactions such that any event within said second scintillator signals the detection of at least on neutron; and

a third scintillator layer comprising a plurality of x-ray sensitive scintillators, wherein said third scintillator layer is sensitive to x-ray interactions such that any event within said third scintillator signals the detection of at least one x-ray.

6. A method for the detection of nuclear radiation in the presence of backgrounds said method comprising the steps of:

forming a plurality of minimum ionizing particle (MIP) sensitive scintillators from a plurality of scintillator dopants and an extruded plastic material, wherein each of said MIP sensitive scintillators includes a central hole thereof;

locating a wavelength-shifting fiber within said hole, wherein said wavelength-shifting fiber absorbs scintillation light having a wavelength thereof and re-emits said light at a longer wavelength to indicate the presence of at least one minimum ionizing particle; and

extruding each MIP sensitive scintillator of said plurality of MIP sensitive scintillators to thereby form a MIP-sensitive scintillator profile thereof.

7. The method of claim 6 further comprising the step of:

configuring said plurality of MIP sensitive scintillators to comprise a pair MIP sensitive scintillators.

8. The method of claim 6 further comprising the steps of:

forming a first scintillator layer comprising a plurality of pairs of said MIP sensitive scintillators;

forming a second scintillator layer comprising a plurality of neutron-sensitive scintillators, wherein said second scintillator layer is sensitive to neutron interactions such that any event within said second scintillator signals the detection of at least one neutron; and

forming a third scintillator layer comprising a plurality of x-ray sensitive scintillators, wherein said third scintillator layer is sensitive to x-ray interactions such that any event within said third scintillator signals the detection of at least one x-ray.

9. The method of claim 6 wherein the step of forming a plurality of MIP sensitive scintillators from said plurality of scintillator dopants and said extruded plastic material, further comprises the step of:

compounding said plurality of scintillator dopants into said extruded plastic material that permits said plastic material to scintillate in response to MIP interactions thereof.

10. The method of claim 6 wherein two hits within said plurality of MIP sensitive scintillators signals at least one of the following: a MIP event or a cosmic ray event.

11. The method of claim 6 wherein two hits within said plurality of MIP-sensitive scintillators comprises at least two layers of MIP-sensitive scintillators, wherein one of said at least two layers of MIP-sensitive scintillators is offset one-half the width of the other of said at least two layers of MIP-sensitive scintillators.

12. A system for the detection of nuclear radiation in the presence of backgrounds, aid system comprising:

a plurality of radiation sensitive scintillators comprising of a plurality of MIP sensitive scintillators, a plurality of neutron sensitive scintillators and a plurality of x-ray sensitive scintillators, wherein said plurality of radiation sensitive scintillators is configured from a plurality of nano-sized particles, dopants and an extruded plastic material, wherein each of said radiation sensitive scintillators includes a central hole thereof;

a wavelength-shifting fiber located within said hole, wherein said wavelength-shifting fiber absorbs scintillation light and re-emits said light at a longer wavelength thereby piping said light to a photodetector whose response to said light indicates the presence of radiation;

a MIP sensitive scintillator profile generated as a result of extruding each MIP sensitive scintillator of said plurality of MIP sensitive scintillators;

a neutron sensitive scintillator profile generated as a result of extruding each neutron sensitive scintillator of said plurality of neutron sensitive scintillators; and

an x-ray sensitive scintillator profile generated as a result of extruding each x-ray sensitive scintillator of said plurality of x-ray sensitive scintillators, thereby permitting the simultaneous detection and identification of a particular type of nuclear radiation from among a plurality of nuclear radiation types.

Assignments (2)
CONFIRMATORY LICENSE Recorded Apr 7, 2022
From: FERMI RESEARCH ALLIANCE, LLC
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 059526/0693 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 20, 2006
From: UNIVERSITIES RESEARCH ASSOCIATION, INC.
To: FERMI RESEARCH ALLIANCE, LLC
Reel/Frame 018535/0363 →
Continuity (1)
Related Publication 20040104347A1 · Jun 3, 2004